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Diff-RNTraj: A Structure-Aware Diffusion Model for Road Network-Constrained Trajectory Generation

delete2024-12-01
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PRE
AI
林
林友芳 (Youfang Lin)
S
Shengnan Guo *
Y
Yiheng Huang
C
Chenyang Xiang
Y
Yuqing Bai
万
万怀宇 (Huaiyu Wan)
DOI:10.1109/TKDE.2024.3460051delete
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摘要

摘要

En 中文
Trajectory data is essential for various applications. However, publicly available trajectory datasets remain limited in scale due to privacy concerns, which hinders the development of trajectory mining and applications. Although some trajectory generation methods have been proposed to expand dataset scale, they generate trajectories in the geographical coordinate system, posing two limitations for practical applications: 1) failing to ensure that the generated trajectories are road-constrained. 2) lacking road-related information. In this paper, we propose a new problem, road network-constrained trajectory (RNTraj) generation, which can directly generate trajectories on the road network with road-related information. Specifically, RNTraj is a hybrid type of data, in which each point is represented by a discrete road segment and a continuous moving rate. To generate RNTraj, we design a diffusion model called Diff-RNTraj, which can effectively handle the hybrid RNTraj using a continuous diffusion framework by incorporating a pre-training strategy to embed hybrid RNTraj into continuous representations. During the sampling stage, a RNTraj decoder is designed to map the continuous representation generated by the diffusion model back to the hybrid RNTraj format. Furthermore, Diff-RNTraj introduces a novel loss function to enhance trajectory's spatial validity. Extensive experiments conducted on two datasets demonstrate the effectiveness of Diff-RNTraj.
Keyword:
Spatial-temporal data mining
diffusion model
trajectory generation
road network
Spatial-temporal data mining
diffusion model
trajectory generation
road network

期刊

IEEE Transactions on Knowledge and Data Engineering 封面图
IEEE Transactions on Knowledge and Data Engineering
IF:
10.4
论文数:
6.8K
被引数:
3.2W

机构

B
Beijing Jiaotong University
学者数:
2.2W
论文数: 1.7W
被引数: 1.2W
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